Helmholtz-Zentrum Geesthacht (HZG), Institute of Polymer Research, Nanochemistry and Nanoengineering Group, Max-Planck-Str. 1, 21502 Geesthacht, Germany.
J Colloid Interface Sci. 2012 Apr 15;372(1):6-15. doi: 10.1016/j.jcis.2012.01.012. Epub 2012 Jan 16.
Despite promising filtration abilities, low mechanical properties of extraordinary porous electrospun nanofibrous membranes could be a major challenge in their industrial development. In addition, such kind of membranes are usually hydrophobic and non-wettable. To reinforce an electrospun nanofibrous membrane made of polyethersulfone (PES) mechanically and chemically (to improve wettability), zirconia nanoparticles as a novel nanofiller in membrane technology were added to the nanofibers. The compressive and tensile results obtained through nanoindentation and tensile tests, respectively, implied an optimum mechanical properties after incorporation of zirconia nanoparticles. Especially compaction resistance of the electrospun nanofibrous membranes improved significantly as long as no agglomeration of the nanoparticles occurred and the electrospun nanocomposite membranes showed a higher tensile properties without any brittleness i.e. a high ductility. Noteworthy, for the first time the compaction level was quantified through a nanoindentation test. In addition to obtaining a desired mechanical performance, the hydrophobicity declined. Combination of promising properties of optimum mechanical and surface chemical properties led to a considerably high water permeability also retention efficiency of the nanocomposite PES nanofibrous membranes. Such finding implies a longer life span and lower energy consumption for a water filtration process.
尽管具有有前景的过滤能力,但非凡多孔静电纺纳米纤维膜的低机械性能可能是其工业发展的主要挑战。此外,这种膜通常是疏水和不可润湿的。为了增强由聚醚砜(PES)制成的静电纺纳米纤维膜的机械和化学性能(以提高润湿性),将氧化锆纳米颗粒作为膜技术中的新型纳米填充物添加到纳米纤维中。通过纳米压痕和拉伸测试分别获得的压缩和拉伸结果表明,在加入氧化锆纳米颗粒后,机械性能达到最佳。特别是只要纳米颗粒不发生团聚,静电纺纳米纤维膜的抗压强度就会显著提高,而且静电纺纳米复合膜表现出更高的拉伸性能,而不会出现脆性,即高延展性。值得注意的是,这是首次通过纳米压痕试验来量化压实程度。除了获得所需的机械性能外,疏水性也降低了。最佳机械性能和表面化学性能的结合导致纳米复合 PES 纳米纤维膜具有相当高的水渗透性和保留效率。这一发现意味着在水过滤过程中具有更长的使用寿命和更低的能耗。